College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
Int J Biol Macromol. 2024 Apr;265(Pt 1):130860. doi: 10.1016/j.ijbiomac.2024.130860. Epub 2024 Mar 13.
Lignin is a popular material for energy transition and high-value utilization due to its low cost, non-toxicity, renewability, and widespread availability. However, its complex structure has hindered its application. Waterborne polyurethane (WPU) uses water as a dispersion medium, which is safer for humans and the environment but also leads to disadvantages such as poor mechanical properties and water resistance. In this study, we prepared multicolor photoluminescent carbon quantum dots (CQDs) in a wide range of wavelengths from lignin. We successfully prepared panchromatic CQDs by additive mixing. The redshift of the emission wavelength is attributed to the synergistic effect of the sp conjugated structure and the surface functional groups. The full-color solid-state luminescence of the CQDs was successfully achieved, and most importantly, the application of full-color CQDs in light-emitting diodes was realized. Moreover, the embedding of the multicolor CQDs in WPU not only makes WPU luminescent but also improves the water resistance and mechanical properties of WPUs. The hydrogen-bonding interactions between the functional groups on the surface of the CQDs and the urethane were responsible for the high performance of the composite. We investigated the UV and strong blue light shielding abilities of WPU/yellow CQDs films, which resulted from the unique absorption peaks of yellow CQDs in the UV region and the strong blue light region. This work provides an efficient method for the high-value utilization of biomass materials and paves the way for the multifunctional application of WPU.
木质素因其低成本、无毒、可再生和广泛可用性而成为能源转型和高价值利用的热门材料。然而,其复杂的结构阻碍了它的应用。水基聚氨酯(WPU)使用水作为分散介质,对人类和环境更安全,但也导致机械性能和耐水性差等缺点。在这项研究中,我们从木质素中制备了具有广泛波长的多色光致发光碳量子点(CQDs)。我们通过添加剂混合成功制备了全色 CQDs。发射波长的红移归因于 sp 共轭结构和表面官能团的协同作用。成功实现了 CQDs 的全彩色固态发光,最重要的是,实现了全彩色 CQDs 在发光二极管中的应用。此外,将多色 CQDs 嵌入 WPU 不仅使 WPU 发光,而且提高了 WPUs 的耐水性和机械性能。CQDs 表面官能团之间的氢键相互作用是复合材料具有高性能的原因。我们研究了 WPU/黄色 CQDs 薄膜的紫外和强蓝光屏蔽能力,这是由于黄色 CQDs 在紫外区域和强蓝光区域的独特吸收峰所致。这项工作为生物质材料的高价值利用提供了一种有效方法,并为 WPU 的多功能应用铺平了道路。